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Titlebook: Analyzing Categorical Data; Jeffrey S. Simonoff Textbook 2003 Springer Science+Business Media New York 2003 Analysis.Estimator.Excel.SAS.S

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期刊全稱Analyzing Categorical Data
影響因子2023Jeffrey S. Simonoff
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學(xué)科分類Springer Texts in Statistics
圖書封面Titlebook: Analyzing Categorical Data;  Jeffrey S. Simonoff Textbook 2003 Springer Science+Business Media New York 2003 Analysis.Estimator.Excel.SAS.S
影響因子.Categorical data arise often in many fields, including biometrics, economics, management, manufacturing, marketing, psychology, and sociology. This book provides an introduction to the analysis of such data. The coverage is broad, using the loglinear Poisson regression model and logistic binomial regression models as the primary engines for methodology. Topics covered include count regression models, such as Poisson, negative binomial, zero-inflated, and zero-truncated models; loglinear models for two-dimensional and multidimensional contingency tables, including for square tables and tables with ordered categories; and regression models for two-category (binary) and multiple-category target variables, such as logistic and proportional odds models...All methods are illustrated with analyses of real data examples, many from recent subject area journal articles. These analyses are highlighted in the text, and are more detailed than is typical, providing discussion of the context and background of the problem, model checking, and scientific implications. More than 200 exercises are provided, many also based on recent subject area literature. Data sets and computer code are available
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Springer Texts in Statisticshttp://image.papertrans.cn/a/image/156809.jpg
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Analyzing Categorical Data978-0-387-21727-7Series ISSN 1431-875X Series E-ISSN 2197-4136
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Return to (Illiberal) Diversity?near regression model. Most of this material typically is not covered in an introductory statistics course. We will focus on the aspects of advanced regression modeling that are of direct relevance to the categorical data modeling methods discussed in succeeding chapters.
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https://doi.org/10.1057/9780230104167he normal, or Gaussian, distribution. It is important to note that the brief overview of least squares regression given here is not a substitute for the thorough discussion that would appear in a good regression textbook. See the “Background material” section of this chapter for several examples of
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